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利用氙离子辐照和自动孔边缘分析进行高通量纳米孔制造与分类

High-Throughput Nanopore Fabrication and Classification Using Xe-Ion Irradiation and Automated Pore-Edge Analysis.

作者信息

Macha Michal, Marion Sanjin, Tripathi Mukesh, Thakur Mukeshchand, Lihter Martina, Kis Andras, Smolyanitsky Alex, Radenovic Aleksandra

机构信息

Laboratory of Nanoscale Biology, Institute of Bioengineering, Ecole Polytechnique Federale de Lausanne (EPFL), Lausanne, 1015, Switzerland.

Interuniversity Microelectronics Centre (IMEC), Kapeldreef 75, B-3001 Leuven, Belgium.

出版信息

ACS Nano. 2022 Oct 25;16(10):16249-16259. doi: 10.1021/acsnano.2c05201. Epub 2022 Sep 26.

Abstract

Large-area nanopore drilling is a major bottleneck in state-of-the-art nanoporous 2D membrane fabrication protocols. In addition, high-quality structural and statistical descriptions of as-fabricated porous membranes are key to predicting the corresponding membrane-wide permeation properties. In this work, we investigate Xe-ion focused ion beam as a tool for scalable, large-area nanopore fabrication on atomically thin, free-standing molybdenum disulfide. The presented irradiation protocol enables designing ultrathin membranes with tunable porosity and pore dimensions, along with spatial uniformity across large-area substrates. Fabricated nanoporous membranes are then characterized using scanning transmission electron microscopy imaging, and the observed nanopore geometries are analyzed through a pore-edge detection and analysis script. We further demonstrate that the obtained structural and statistical data can be readily passed on to computational and analytical tools to predict the permeation properties at both individual pore and membrane-wide scales. As an example, membranes featuring angstrom-scale pores are investigated in terms of their emerging water and ion flow properties through extensive all-atom molecular dynamics simulations. We believe that the combination of experimental and analytical approaches presented here will yield accurate physics-based property estimates and thus potentially enable a true function-by-design approach to fabrication for applications such as osmotic power generation and desalination/filtration.

摘要

大面积纳米孔钻孔是当前纳米多孔二维膜制备方案中的一个主要瓶颈。此外,对制备好的多孔膜进行高质量的结构和统计描述是预测相应的全膜渗透性能的关键。在这项工作中,我们研究了氙离子聚焦离子束作为一种在原子级薄的独立二硫化钼上进行可扩展大面积纳米孔制备的工具。所提出的辐照方案能够设计出具有可调孔隙率和孔径尺寸的超薄膜,以及跨大面积衬底的空间均匀性。然后使用扫描透射电子显微镜成像对制备的纳米多孔膜进行表征,并通过孔边缘检测和分析脚本对观察到的纳米孔几何形状进行分析。我们进一步证明,所获得的结构和统计数据可以很容易地传递给计算和分析工具,以预测单个孔和全膜尺度上的渗透性能。例如,通过广泛的全原子分子动力学模拟,研究了具有埃级孔径的膜的新兴水和离子流动特性。我们相信,这里提出的实验和分析方法的结合将产生基于物理的准确性能估计,从而有可能为诸如渗透发电和脱盐/过滤等应用实现真正的按设计功能制造方法。

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